Transport Layer3-1 rdt2.1: sender, handles garbled ACK/NAKs Wait for call 0 from above sndpkt = make_pkt(0, data, checksum) udt_send(sndpkt) rdt_send(data)

Slides:



Advertisements
Similar presentations
CS 4284 Systems Capstone Networking Godmar Back.
Advertisements

Transport Layer3-1 Homework r Chapter 2#10,13-18 r Due Wed September 17.
Transport Layer3-1 Pipelined protocols Pipelining: sender allows multiple, “in-flight”, yet-to- be-acknowledged pkts m range of sequence numbers must be.
Transport Layer 4 Slides from Kurose and Ross
Application Layer 2-1 Chapter 3 Transport Layer Computer Networking: A Top Down Approach 6 th edition Jim Kurose, Keith Ross Addison-Wesley March 2012.
Transport Layer 3-1 ECE 5650 TL: Reliable Data Transfer.
Transport Layer3-1 Principles of Reliable data transfer r important in app., transport, link layers r top-10 list of important networking topics! r characteristics.
The Future r There will be a Wireshark TCP homework up on the wiki later today. It will be due Wednesday. r The next test is coming soon – next Wednesday????
1 Outline r Transport-layer services r Multiplexing and demultiplexing r Connectionless transport: UDP r Principles of reliable data transfer.
Transport Layer3-1 Chapter 3: Transport Layer Our goals: r understand principles behind transport layer services: m multiplexing/demultipl exing m reliable.
Transport Layer3-1 Data Communication and Networks Lecture 6 Reliable Data Transfer October 12, 2006.
Announcement Project 1 due last night, how is that ? Project 2 almost ready, out tomorrow, will post online –Much harder than project 1, start early!
Announcement Project 1 due last night, how is that ? Homework 1 grade, comments out –Will be discussed in the next lecture Homework 2 out Project 2 almost.
Chapter 3 Transport Layer slides are modified from J. Kurose & K. Ross CPE 400 / 600 Computer Communication Networks Lecture 9.
Transport Layer3-1 Reliable Data Transfer. Transport Layer3-2 Principles of Reliable data transfer r important in app., transport, link layers r top-10.
1 Outline r Transport-layer services r Multiplexing and demultiplexing r Connectionless transport: UDP r Principles of reliable data transfer.
3-1 Sect. 3.4 Principles of reliable data transfer Computer Networking: A Top Down Approach Featuring the Internet, 1 st edition. Jim Kurose, Keith Ross.
CPSC 441: Reliable Transport1 Reliable Data Transfer Instructor: Carey Williamson Office: ICT Class.
Transport Layer3-1 Chapter 3 Transport Layer Computer Networking: A Top Down Approach Featuring the Internet, 3 rd edition. Jim Kurose, Keith Ross Addison-Wesley,
Some slides are in courtesy of J. Kurose and K. Ross Review of Previous Lecture r Transport-layer services r Multiplexing and demultiplexing r Connectionless.
9/30/ /2/2003 The Transport Layer September 30-October 2, 2003.
EEC-484/584 Computer Networks Lecture 7 Wenbing Zhao (Part of the slides are based on Drs. Kurose & Ross ’ s slides for their Computer.
Transport Layer3-1 Data Communication and Networks Lecture 5  Transport Protocols: Multiplexing and Reliable Data Transfer October 7, 2004.
EEC-484/584 Computer Networks Lecture 7 Wenbing Zhao (Part of the slides are based on Drs. Kurose & Ross ’ s slides for their Computer.
Transport Layer 3-1 Chapter 3 Transport Layer Computer Networking: A Top Down Approach 6 th edition Jim Kurose, Keith Ross Addison-Wesley March 2012 
CSCI 3335: C OMPUTER N ETWORKS C HAPTER 3 T RANSPORT L AYER Vamsi Paruchuri University of Central Arkansas Some.
Transport Layer 3-1 Chapter 3 outline 3.1 transport-layer services 3.2 multiplexing and demultiplexing 3.3 connectionless transport: UDP 3.4 principles.
1 Mao W07 Transport Layer EECS 489 Computer Networks Z. Morley Mao Monday Jan 29, 2007 Acknowledgement: Some.
Transport Layer 3-1 Chapter 3 Transport Layer Computer Networking: A Top Down Approach 5 th edition. Jim Kurose, Keith Ross Addison-Wesley, April 2009.
Transport Layer 3-1 Chapter 3: Transport Layer Our goals: r understand principles behind transport layer services: m sockets m reliable data transfer m.
ICT 6621 : Advanced NetworkingKhaled Mahbub, IICT, BUET, 2008 Lecture 7 TCP/IP Transport Layer (1)
Transport Layer 3-1 Chapter 3 Transport Layer Computer Networking: A Top Down Approach 6 th edition Jim Kurose, Keith Ross Addison-Wesley March 2012 A.
15-1 Last time □ Reliable Data Transfer ♦ Provide rdt over unreliable network layer ♦ FSM model ♦ rdt 1.0: rdt over reliable channels ♦ rdt 2.0: rdt over.
Transport Layer 3-1 From Computer Networking: A Top Down Approach Featuring the Internet by Jim Kurose, Keith Ross Addison-Wesley, A note on the use of.
rdt2.2: a NAK-free protocol
Part 3: Transport Layer: Reliable Data Transfer CSE 3461/5461 Reading: Section 3.4, Kurose and Ross 1.
Chapter 3, slide: 1 CS 372 – introduction to computer networks* Thursday July 8 Announcements: r Lab 3 is posted and due is Monday July 19. r Midterm is.
Transport Layer 3-1 Chapter 3 outline 3.4 Principles of reliable data transfer.
September 24 th, 2013 CS1652 The slides are adapted from the publisher’s material All material copyright J.F Kurose and K.W. Ross, All Rights.
Transport Layer 3-1 Chapter 3 Transport Layer Computer Networking: A Top Down Approach 6 th edition Jim Kurose, Keith Ross Addison-Wesley March 2012 Part.
1 John Magee 10 February 2014 CS 280: Transport Layer: Reliable Data Transfer Most slides adapted from Kurose and Ross, Computer Networking 6/e Source.
Before The Canned Slides r What sort of things did you learn from Mikes talk on Friday? r Mini-homework this week: create a wiki page with cross-referenced.
Introduction 1-1 Lecture 6 Computer Networking: A Top Down Approach 6 th edition Jim Kurose, Keith Ross Addison-Wesley March 2012 CS3516: These slides.
Transport Layer 3-1 Chapter 3 Transport Layer Computer Networking: A Top Down Approach 6 th edition Jim Kurose, Keith Ross Addison-Wesley March 2012 All.
Transport Layer Our goals:
9: Pipelined Protocols and RTT Transport Layer 3-1 Slides adapted from: J.F Kurose and K.W. Ross,
Tutorial 2 Solution. Q1. Consider a channel that can lose packets but has a maximum delay that is known. Modify protocol rdt2.1 to include sender timeout.
Important r Midterm will be on m FRIDAY, Feb. 12th 1.
Introduction 1 Lecture 11 Transport Layer (Reliable Data Transfer) slides are modified from J. Kurose & K. Ross University of Nevada – Reno Computer Science.
Application Layer 2-1 Chapter 3 Transport Layer Computer Networking: A Top Down Approach 6 th edition Jim Kurose, Keith Ross Addison-Wesley March 2012.
1 COMP 431 Internet Services & Protocols The Transport Layer Pipelined Transport Protocols Jasleen Kaur March 29, 2016.
Performance of rdt3.0 rdt3.0 works, but performance stinks
Chapter 3 Transport Layer
Chapter 3 outline 3.1 transport-layer services
Last time Reliable Data Transfer
rdt2.2: a NAK-free protocol
Transport Layer Our goals:
EEC-484/584 Computer Networks
EEC-484/584 Computer Networks
rdt2.2: a NAK-free protocol
rdt2.2: a NAK-free protocol
rdt2.2: a NAK-free protocol
rdt2.2: a NAK-free protocol
Chapter 3 outline 3.1 transport-layer services
Chapter 3 Transport Layer
9: Pipelined Protocols and RTT
Chapter 3 Transport Layer
rdt2.0: FSM specification
CS 5565 Network Architecture and Protocols
rdt2.2: a NAK-free protocol
Presentation transcript:

Transport Layer3-1 rdt2.1: sender, handles garbled ACK/NAKs Wait for call 0 from above sndpkt = make_pkt(0, data, checksum) udt_send(sndpkt) rdt_send(data) Wait for ACK or NAK 0 udt_send(sndpkt) rdt_rcv(rcvpkt) && ( corrupt(rcvpkt) || isNAK(rcvpkt) ) sndpkt = make_pkt(1, data, checksum) udt_send(sndpkt) rdt_send(data) rdt_rcv(rcvpkt) && notcorrupt(rcvpkt) && isACK(rcvpkt) udt_send(sndpkt) rdt_rcv(rcvpkt) && ( corrupt(rcvpkt) || isNAK(rcvpkt) ) rdt_rcv(rcvpkt) && notcorrupt(rcvpkt) && isACK(rcvpkt) Wait for call 1 from above Wait for ACK or NAK 1  

Transport Layer3-2 rdt2.1: receiver, handles garbled ACK/NAKs Wait for 0 from below sndpkt = make_pkt(NAK, chksum) udt_send(sndpkt) rdt_rcv(rcvpkt) && not corrupt(rcvpkt) && has_seq0(rcvpkt) rdt_rcv(rcvpkt) && notcorrupt(rcvpkt) && has_seq1(rcvpkt) extract(rcvpkt,data) deliver_data(data) sndpkt = make_pkt(ACK, chksum) udt_send(sndpkt) Wait for 1 from below rdt_rcv(rcvpkt) && notcorrupt(rcvpkt) && has_seq0(rcvpkt) extract(rcvpkt,data) deliver_data(data) sndpkt = make_pkt(ACK, chksum) udt_send(sndpkt) rdt_rcv(rcvpkt) && (corrupt(rcvpkt) sndpkt = make_pkt(ACK, chksum) udt_send(sndpkt) rdt_rcv(rcvpkt) && not corrupt(rcvpkt) && has_seq1(rcvpkt) rdt_rcv(rcvpkt) && (corrupt(rcvpkt) sndpkt = make_pkt(ACK, chksum) udt_send(sndpkt) sndpkt = make_pkt(NAK, chksum) udt_send(sndpkt)

Transport Layer3-3 rdt2.1: discussion Sender: r seq # added to pkt r two seq. #’s (0,1) will suffice. Why? r must check if received ACK/NAK corrupted r twice as many states m state must “remember” whether “current” pkt has 0 or 1 seq. # Receiver: r must check if received packet is duplicate m state indicates whether 0 or 1 is expected pkt seq # r note: receiver can not know if its last ACK/NAK received OK at sender

Transport Layer3-4 rdt2.2: a NAK-free protocol r same functionality as rdt2.1, using ACKs only r instead of NAK, receiver sends ACK for last pkt received OK m receiver must explicitly include seq # of pkt being ACKed r duplicate ACK at sender results in same action as NAK: retransmit current pkt

Transport Layer3-5 rdt2.2: sender, receiver fragments Wait for call 0 from above sndpkt = make_pkt(0, data, checksum) udt_send(sndpkt) rdt_send(data) udt_send(sndpkt) rdt_rcv(rcvpkt) && ( corrupt(rcvpkt) || isACK(rcvpkt,1) ) rdt_rcv(rcvpkt) && notcorrupt(rcvpkt) && isACK(rcvpkt,0) Wait for ACK 0 sender FSM fragment Wait for 0 from below rdt_rcv(rcvpkt) && notcorrupt(rcvpkt) && has_seq1(rcvpkt) extract(rcvpkt,data) deliver_data(data) sndpkt = make_pkt(ACK1, chksum) udt_send(sndpkt) rdt_rcv(rcvpkt) && (corrupt(rcvpkt) || has_seq1(rcvpkt)) udt_send(sndpkt) receiver FSM fragment 

Transport Layer3-6 rdt3.0: channels with errors and loss New assumption: underlying channel can also lose packets (data or ACKs) m checksum, seq. #, ACKs, retransmissions will be of help, but not enough Approach: sender waits “reasonable” amount of time for ACK r retransmits if no ACK received in this time r if pkt (or ACK) just delayed (not lost): m retransmission will be duplicate, but use of seq. #’s already handles this m receiver must specify seq # of pkt being ACKed r requires countdown timer

Transport Layer3-7 rdt3.0 sender sndpkt = make_pkt(0, data, checksum) udt_send(sndpkt) start_timer rdt_send(data) Wait for ACK0 rdt_rcv(rcvpkt) && ( corrupt(rcvpkt) || isACK(rcvpkt,1) ) Wait for call 1 from above sndpkt = make_pkt(1, data, checksum) udt_send(sndpkt) start_timer rdt_send(data) rdt_rcv(rcvpkt) && notcorrupt(rcvpkt) && isACK(rcvpkt,0) rdt_rcv(rcvpkt) && ( corrupt(rcvpkt) || isACK(rcvpkt,0) ) rdt_rcv(rcvpkt) && notcorrupt(rcvpkt) && isACK(rcvpkt,1) stop_timer udt_send(sndpkt) start_timer timeout udt_send(sndpkt) start_timer timeout rdt_rcv(rcvpkt) Wait for call 0from above Wait for ACK1  rdt_rcv(rcvpkt)   

Transport Layer3-8 rdt3.0 in action

Transport Layer3-9 rdt3.0 in action

Transport Layer3-10 Performance of rdt3.0 r rdt3.0 works, but performance stinks r example: 1 Gbps link, 15 ms e-e prop. delay, 1KB packet: T transmit = 8kb/pkt 10**9 b/sec = 8 microsec m U sender : utilization – fraction of time sender busy sending m 1KB pkt every 30 msec -> 33kB/sec thruput over 1 Gbps link m network protocol limits use of physical resources! L (packet length in bits) R (transmission rate, bps) =

Transport Layer3-11 rdt3.0: stop-and-wait operation first packet bit transmitted, t = 0 senderreceiver RTT last packet bit transmitted, t = L / R first packet bit arrives last packet bit arrives, send ACK ACK arrives, send next packet, t = RTT + L / R

Transport Layer3-12 Pipelined protocols Pipelining: sender allows multiple, “in-flight”, yet-to- be-acknowledged pkts m range of sequence numbers must be increased m buffering at sender and/or receiver r Two generic forms of pipelined protocols: go-Back-N, selective repeat

Transport Layer3-13 Pipelining: increased utilization first packet bit transmitted, t = 0 senderreceiver RTT last bit transmitted, t = L / R first packet bit arrives last packet bit arrives, send ACK ACK arrives, send next packet, t = RTT + L / R last bit of 2 nd packet arrives, send ACK last bit of 3 rd packet arrives, send ACK Increase utilization by a factor of 3!

Transport Layer3-14 Go-Back-N Sender: r k-bit seq # in pkt header r “window” of up to N, consecutive unack’ed pkts allowed r ACK(n): ACKs all pkts up to, including seq # n - “cumulative ACK” r timer for each in-flight pkt r timeout(n): retransmit pkt n and all higher seq # pkts in window

Transport Layer3-15 GBN: sender extended FSM Wait start_timer udt_send(sndpkt[base]) udt_send(sndpkt[base+1]) … udt_send(sndpkt[nextseqnum-1]) timeout rdt_send(data) if (nextseqnum < base+N) { sndpkt[nextseqnum] = make_pkt(nextseqnum,data,chksum) udt_send(sndpkt[nextseqnum]) if (base == nextseqnum) start_timer nextseqnum++ } else refuse_data(data) base = getacknum(rcvpkt)+1 If (base == nextseqnum) stop_timer else start_timer rdt_rcv(rcvpkt) && notcorrupt(rcvpkt) base=1 nextseqnum=1 rdt_rcv(rcvpkt) && corrupt(rcvpkt) 

Transport Layer3-16 GBN: receiver extended FSM ACK-only: always send ACK for correctly-received pkt with highest in-order seq # m may generate duplicate ACKs  need only remember expectedseqnum r out-of-order pkt: m discard (don’t buffer) -> no receiver buffering! m Re-ACK pkt with highest in-order seq # Wait udt_send(sndpkt) default rdt_rcv(rcvpkt) && notcurrupt(rcvpkt) && hasseqnum(rcvpkt,expectedseqnum) extract(rcvpkt,data) deliver_data(data) sndpkt = make_pkt(expectedseqnum,ACK,chksum) udt_send(sndpkt) expectedseqnum++ expectedseqnum=1 sndpkt = make_pkt(expectedseqnum,ACK,chksum) 

Transport Layer3-17 GBN in action

Transport Layer3-18 Selective Repeat r receiver individually acknowledges all correctly received pkts m buffers pkts, as needed, for eventual in-order delivery to upper layer r sender only resends pkts for which ACK not received m sender timer for each unACKed pkt r sender window m N consecutive seq #’s m again limits seq #s of sent, unACKed pkts

Transport Layer3-19 Selective repeat: sender, receiver windows

Transport Layer3-20 Selective repeat data from above : r if next available seq # in window, send pkt timeout(n): r resend pkt n, restart timer ACK(n) in [sendbase,sendbase+N]: r mark pkt n as received r if n smallest unACKed pkt, advance window base to next unACKed seq # sender pkt n in [rcvbase, rcvbase+N-1] r send ACK(n) r out-of-order: buffer r in-order: deliver (also deliver buffered, in-order pkts), advance window to next not-yet-received pkt pkt n in [rcvbase-N,rcvbase-1] r ACK(n) otherwise: r ignore receiver

Transport Layer3-21 Selective repeat in action

Transport Layer3-22 Selective repeat: dilemma Example: r seq #’s: 0, 1, 2, 3 r window size=3 r receiver sees no difference in two scenarios! r incorrectly passes duplicate data as new in (a) Q: what relationship between seq # size and window size?